Yang Z, Mei Jun, Yang Min, Chan N H, Sheng Ping
Department of Physics, Hong Kong University of Science and Technology, Clear Water Bay, Kowloon, Hong Kong, China.
Phys Rev Lett. 2008 Nov 14;101(20):204301. doi: 10.1103/PhysRevLett.101.204301.
We present the experimental realization and theoretical understanding of a membrane-type acoustic metamaterial with very simple construct, capable of breaking the mass density law of sound attenuation in the 100-1000 Hz regime by a significant margin ( approximately 200 times). Owing to the membrane's weak elastic moduli, there can be low-frequency oscillation patterns even in a small elastic film with fixed boundaries defined by a rigid grid. The vibrational eigenfrequencies can be tuned by placing a small mass at the center of the membrane sample. Near-total reflection is achieved at a frequency between two eigenmodes where the in-plane average of normal displacement is zero. By using finite element simulations, negative dynamic mass is explicitly demonstrated at frequencies around the total reflection frequency. Excellent agreement between theory and experiment is obtained.
我们展示了一种结构非常简单的膜型声学超材料的实验实现和理论理解,该超材料能够在100 - 1000 Hz频段显著突破声衰减的质量密度定律(约200倍)。由于膜的弹性模量较弱,即使在由刚性网格定义固定边界的小弹性薄膜中也可能存在低频振荡模式。通过在膜样品中心放置一个小质量块,可以调节振动本征频率。在两个本征模式之间的某个频率处实现了近全反射,此时法向位移的面内平均值为零。通过有限元模拟,在全反射频率附近的频率处明确证明了负动态质量。理论与实验之间取得了极佳的一致性。